Title
A virtual design methodology to improve the dynamics and productivity of large milling toolsVersion
Postprint
Rights
© 2025 The AuthorsAccess
Embargoed accessPublisher’s version
https://doi.org/10.1016/j.jmapro.2025.01.024Published at
Journal of Manufacturing Processes Vol. 134. Pp. 1096-1113. January, 2025Publisher
ElsevierAbstract
Large cutting tools are widely used in sectors such as automotive, where complex shape aluminium components are machined at high cutting speeds, in a single clamping and in short cycle times with elev ... [+]
Large cutting tools are widely used in sectors such as automotive, where complex shape aluminium components are machined at high cutting speeds, in a single clamping and in short cycle times with elevated Material Removal Rate (MRR). However, their relatively low stiffness and natural frequencies make chatter the primary productivity limitation. Developing optimised tools to overcome these limitations is often cost-prohibitive with current design methods. This paper presents a virtual design methodology for optimising large milling tools to mitigate chatter through topology optimisation and Finite Element Modal Analysis (FEMA). Topology optimisation enhanced tool dynamics, enabling chatter reduction under higher productivity conditions. An improved FEMA model was developed to accurately predict the modal parameters of the cutting tools, featuring a high-fidelity representation of the tool-holder clamping to the spindle. The predicted modal parameters enable cost-effective chatter prediction for tool design validations, minimising development and experimental costs. To validate the methodology, a prototype of the optimised tool was manufactured and tested through experimental modal analysis and machining tests, demonstrating significant productivity improvement in MRR compared to the initial design. [-]
Funder
Gobierno VascoGobierno Vasco
Gobierno de España
Program
Elkartek 2024Programa de apoyo a la I+D Empresarial Hazitek 2022
Proyectos de Generación de Conocimiento y a actuaciones para la formación de personal investigador predoctoral
Number
KK-2024-00005ZL-2022-00741
PID2022-139655OB-I00
Award URI
Sin informaciónSin información
Sin información
Project
Nueva generación de procesos para la (re)fabricación sostenible (ORLEGI)EVMACH
Diseño a medida de la integridad superficial de los componentes mecanizados para mejorar su durabilidad en aplicaciones de salud y Aeronáuticas (TAILORSURF)
Collections
- Articles - Engineering [700]